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首页> 外文期刊>Journal of Materials Science >Microstructural feature and tribological behaviors of pyrolytic carbon-coated copper foam/carbon composite
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Microstructural feature and tribological behaviors of pyrolytic carbon-coated copper foam/carbon composite

机译:热解碳涂层铜泡沫/碳复合材料的微观结构特征及摩擦学行为

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摘要

A novel sliding contact material of pyrolytic carbon (PyC)-coated copper foam/carbon composite was fabricated by a chemical vapor deposition (CVD) technology, followed by several densifying processes of furan resin impregnation and carbonization. Microstructure, electrical and thermal conductivities and current-carrying tribological performance were investigated. The results show PyC crystallites are evenly arranged on the copper foam surface after the CVD process. Because interface wettability between the copper foam and resin carbon matrix is improved by the PyC layer, the composite has a dense structure and a good interface bonding. The composite has obviously more advantages than the carbon-based pantograph strips in the density, electrical and thermal conductivities, due to the copper foam with three-dimensional structure. Friction and wear behaviors were investigated using a current-carrying friction tester. As the electrical current increases, wear rate and wear surface temperature continually increase, and friction coefficient changes from wildly fluctuating to stable. The high electrical current causes high temperature of wear surface and severe wear of oxidization and arc erosion. Copper oxide particles can improve wear surface roughness and change the sliding friction to the rolling friction between the friction couples. In addition, two physical models are schematically illustrated to understand wear mechanism during the current-carrying friction tests.
机译:通过化学气相沉积(CVD)技术制造了热解碳(PYC) - 涂覆的铜泡沫/碳复合材料的新型滑动接触材料,其次是呋喃树脂浸渍和碳化的几种致密化方法。研究了微观结构,电气和导热性和携带的载流性摩擦学性能。结果表明,在CVD工艺之后,PYC微晶均匀地布置在铜泡沫表面上。因为铜泡沫和树脂碳基质之间的界面润湿性得到了Pyc层,所以复合材料具有致密的结构和良好的界面粘合。由于具有三维结构的铜泡沫,复合材料显着比密度,电气和导热率的基于碳的泛乐霜条带更有优点。使用载流摩擦测试仪研究了摩擦和磨损行为。随着电流增加,磨损率和磨损表面温度不断增加,并且摩擦系数变化从稳定波动到稳定。高电流导致高温的磨损表面和严重磨削和弧形腐蚀。氧化铜颗粒可以改善磨损表面粗糙度并将滑动摩擦改变为摩擦耦合之间的滚动摩擦。另外,示意性地示出了两个物理模型以在携带电流摩擦测试期间了解磨损机构。

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  • 来源
    《Journal of Materials Science》 |2019年第21期|共12页
  • 作者单位

    Cent S Univ State Key Lab Power Met Changsha 410083 Hunan Peoples R China;

    Univ Wollongong Fac Engn &

    Informat Sci Northfields Ave Wollongong NSW 2522 Australia;

    Cent S Univ State Key Lab Power Met Changsha 410083 Hunan Peoples R China;

    Cent S Univ State Key Lab Power Met Changsha 410083 Hunan Peoples R China;

    Cent S Univ State Key Lab Power Met Changsha 410083 Hunan Peoples R China;

    Cent S Univ State Key Lab Power Met Changsha 410083 Hunan Peoples R China;

    Univ Wollongong Fac Engn &

    Informat Sci Northfields Ave Wollongong NSW 2522 Australia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
  • 关键词

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